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A through process model of the impact of in-service loading, residual stress, and microstructure on the final fatigue life of an A356 automotive wheel

机译:贯穿过程模型,其中涉及在役载荷,残余应力和微观结构对A356汽车车轮最终疲劳寿命的影响

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Fatigue life is a key consideration in the design of cast aluminium alloy automotive wheels. In this investigation, a through process modelling methodology was used to predict the fatigue life of an A356 automotive wheel subject to bending fatigue. This methodology considers the evolution of microstructural features and stress state through the manufacturing process (including casting, heat treatment, and machining) and during service loading. This paper focuses on validating the in-service model and quantifying the interaction between the key factors influencing fatigue behaviour. The cyclic elastic strains measured on the wheel surface for a series of different bending loads were found to agree well with predictions. The predicted crack initiation sites and the number of cycles to cause failure in the wheel were in agreement with full scale fatigue tests on wheels. The fatigue life and associated scatter are shown to be a function of microstructure, residual stress and in-service loading. Both the pore size and loading level have a significant impact on fatigue behaviour, while residual stresses showed a moderate influence on fatigue life for the wheel.
机译:疲劳寿命是铸造铝合金汽车车轮设计中的关键考虑因素。在这项研究中,采用了全过程建模方法来预测A356汽车车轮遭受弯曲疲劳的疲劳寿命。该方法论考虑了整个制造过程(包括铸造,热处理和机加工)以及服务加载过程中微观结构特征和应力状态的演变。本文着重于验证在役模型并量化影响疲劳行为的关键因素之间的相互作用。发现在车轮表面上针对一系列不同的弯曲载荷测得的循环弹性应变与预测值非常吻合。预测的裂纹萌生部位和导致车轮失效的循环次数与车轮的全面疲劳测试一致。疲劳寿命和相关的散布表明是微观结构,残余应力和使用载荷的函数。孔径和载荷水平都对疲劳性能产生重大影响,而残余应力对车轮的疲劳寿命显示出中等程度的影响。

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